Risk-Sensitive Motion Planning using Entropic Value-at-Risk

November 23, 2020 ยท Declared Dead ยท ๐Ÿ› European Control Conference

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Authors Anushri Dixit, Mohamadreza Ahmadi, Joel W. Burdick arXiv ID 2011.11211 Category eess.SY: Systems & Control (EE) Cross-listed cs.RO, math.OC Citations 34 Venue European Control Conference Last Checked 1 month ago
Abstract
We consider the problem of risk-sensitive motion planning in the presence of randomly moving obstacles. To this end, we adopt a model predictive control (MPC) scheme and pose the obstacle avoidance constraint in the MPC problem as a distributionally robust constraint with a KL divergence ambiguity set. This constraint is the dual representation of the Entropic Value-at-Risk (EVaR). Building upon this viewpoint, we propose an algorithm to follow waypoints and discuss its feasibility and completion in finite time. We compare the policies obtained using EVaR with those obtained using another common coherent risk measure, Conditional Value-at-Risk (CVaR), via numerical experiments for a 2D system. We also implement the waypoint following algorithm on a 3D quadcopter simulation.
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